Precise Modulation of CO 2 ‐to‐Ethanol Conversion by Fully‐Exposed Cu n Clusters Induced by Dangling Bonds in Lacunary Polyoxometalate

ABSTRACT The electrochemical CO 2 reduction toward ethanol under high current density remains challenging. Herein, WO x ‐supported fully exposed Cu clusters (FECCs) confined by hollow mesoporous carbon spheres (HMCS) (Cu‐WO x @HMCS) are fabricated through the “molecular defect confinement” strategy based on the [PW 9 O 34 ] 9− . The [PW 9 O 34 ] 9− features a tri‐lacunary configuration, single‐sided dangling bond characteristics, and excellent liquid‐phase stability, enabling precise anchoring of the {Cu II 6 } cluster to realize atomic dispersion at the molecular level, while enabling the controllable construction of the geometric size and electronic structure of FECCs via Cu─O─W bonds during pyrolysis. The Cu‐WO x @HMCS executes exceptional performance for CO 2 ‐to‐ethanol conversion, with Faradaic efficiencies of 80.6% and 75.3% at partial current densities of 322.4 and 677.7 mA cm −2 , respectively. Mechanism studies reveal the synergistic regulation: (1) The FECCs display a higher Fermi level compared to Cu nanoparticles, acting as a superior electron donor to promote CO 2 adsorption and conversion; moreover, the geometric size effect of FECCs increases the * CO coverage, favoring the C─C coupling. (2) The WO x supplies reactive * H, which favors the hydrogenation of * CO and * CHCOH, steering the asymmetric C─C coupling toward ethanol. This study enables atomic‐level design of catalysts by employing polyoxometalates, delivering a crucial method for precisely constructing fully exposed clusters and highly selective CO 2 RR‐to‐ethanol.

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Journal
Advanced Materials
Published
2026-10-05
DOI
https://doi.org/10.1002/adma.75291
Primary Topic
CO2 Reduction Techniques and Catalysts
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article
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article

Precise Modulation of CO 2 ‐to‐Ethanol Conversion by Fully‐Exposed Cu n Clusters Induced by Dangling Bonds in Lacunary Polyoxometalate

Fengyue Sun, Changle Yue, Yiyuan Xu, Haoping Di et al.
Advanced Materials
CO2 Reduction Techniques and Catalysts
article

Precise Modulation of CO 2 ‐to‐Ethanol Conversion by Fully‐Exposed Cu n Clusters Induced by Dangling Bonds in Lacunary Polyoxometalate

Fengyue Sun, Changle Yue, Yiyuan Xu, Haoping Di, Jiahui Bi, Yukun Lu, Yanwei Ju, Yunxiu Zhao, Chongzheng Xu, Na Liu, Shuo Wang, Fan Wang, Xiangxi Meng
article en

Abstract

ABSTRACT The electrochemical CO 2 reduction toward ethanol under high current density remains challenging. Herein, WO x ‐supported fully exposed Cu clusters (FECCs) confined by hollow mesoporous carbon spheres (HMCS) (Cu‐WO x @HMCS) are fabricated through the “molecular defect confinement” strategy based on the [PW 9 O 34 ] 9− . The [PW 9 O 34 ] 9− features a tri‐lacunary configuration, single‐sided dangling bond characteristics, and excellent liquid‐phase stability, enabling precise anchoring of the {Cu II 6 } cluster to realize atomic dispersion at the molecular level, while enabling the controllable construction of the geometric size and electronic structure of FECCs via Cu─O─W bonds during pyrolysis. The Cu‐WO x @HMCS executes exceptional performance for CO 2 ‐to‐ethanol conversion, with Faradaic efficiencies of 80.6% and 75.3% at partial current densities of 322.4 and 677.7 mA cm −2 , respectively. Mechanism studies reveal the synergistic regulation: (1) The FECCs display a higher Fermi level compared to Cu nanoparticles, acting as a superior electron donor to promote CO 2 adsorption and conversion; moreover, the geometric size effect of FECCs increases the * CO coverage, favoring the C─C coupling. (2) The WO x supplies reactive * H, which favors the hydrogenation of * CO and * CHCOH, steering the asymmetric C─C coupling toward ethanol. This study enables atomic‐level design of catalysts by employing polyoxometalates, delivering a crucial method for precisely constructing fully exposed clusters and highly selective CO 2 RR‐to‐ethanol.

Advanced Materials
China University of Petroleum, East China (CN), State Key Laboratory of Heavy Oil (CN)
Openalex Percentile: Top 32%
CO2 Reduction Techniques and Catalysts
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